A nozzle inhibitor is positioned in a filler neck closure assembly between a pivotable outer door and a pivotable inner door to prevent a user from pumping unleaded fuel into a diesel fuel tank. The nozzle inhibitor blocks full insertion of a small-diameter unleaded fuel nozzle into the filler neck closure assembly yet allows full insertion of a large-diameter diesel fuel nozzle into the filler neck closure assembly.
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1. A nozzle inhibitor apparatus comprising
a fill tube adapted to be coupled to a fuel tank of a motor vehicle having a diesel engine, the fill tube having a nozzle-receiving aperture normally closed by an outer door mounted for movement relative to the fill tube between aperture-closing and aperture-opening positions, the outer door being arranged to be moved to an opened position by a nozzle inserted through the nozzle-receiving aperture, and
means positioned in the fill tube and responsive to movement of the outer door for preventing insertion of a small-diameter unleaded fuel nozzle into the fill tube while allowing insertion of a large-diameter diesel fuel nozzle into the fill tube.
11. A nozzle inhibitor apparatus comprising
a fill tube adapted to be coupled to a fuel tank of a motor vehicle having a diesel engine, the fill tube having a nozzle-receiving aperture normally closed by a door mounted for movement relative to the fill tube between aperture-closing and aperture-opening positions, the door being arranged to be moved to an opened position by a nozzle inserted through the nozzle-receiving aperture,
a stop gate, and
a cam member coupled to the stop gate, a unit comprising the stop gate and the cam member coupled thereto being positioned in the fill tube and movable in a direction generally perpendicular to a longitudinal axis of the fill tube between a first position blocking insertion of a small-diameter unleaded fuel nozzle into the fill tube past the stop gate and a second position allowing insertion of a large-diameter diesel fuel nozzle into the fill tube past the stop gate, the door engaging the cam member to move the unit to the second position as the door moves to an opened position in response to the insertion of the large-diameter diesel fuel nozzle, but not the small-diameter unleaded fuel nozzle, into the fill tube through the outer nozzle-receiving aperture.
18. A nozzle inhibitor apparatus comprising
a fill tube including a filler neck coupled to a fuel tank of a motor vehicle having a diesel engine and a filler neck closure assembly coupled to the filler neck, the filler neck closure assembly including a housing having an outer nozzle-receiving aperture normally closed by a pivotable outer door and an inner nozzle-receiving aperture normally closed by a pivotable inner door,
a stop gate, and
a cam member coupled to the stop gate, a unit comprising the stop gate and the cam member coupled thereto being positioned in the filler neck closure assembly and movable in a direction generally perpendicular to a longitudinal axis of the filler neck closure assembly between a first position blocking insertion of a small-diameter unleaded fuel nozzle into the fill tube past the stop gate and a second position allowing insertion of a large-diameter diesel fuel nozzle into the fill tube past the stop gate, and
a spring biasing the unit to the first position, the pivotable outer door engaging the cam member to move the unit to the second position against the biasing spring as the pivotable outer door moves to an opened position in response to the insertion of the large-diameter diesel fuel nozzle, but not the small-diameter unleaded fuel nozzle, into the filler neck through the outer nozzle-receiving aperture.
22. A nozzle inhibitor apparatus comprising
a fill tube formed to include a nozzle-receiving passageway extending between an outer nozzle-receiving opening and an inner nozzle-receiving opening, the fill tube further including an outer appearance door arranged normally to close the outer nozzle-receiving opening and an inner flapper door arranged to normally close the inner nozzle-receiving opening,
a stop gate mounted for movement in the nozzle-receiving passageway,
a spring arranged to urge the stop gate into a path of a small-diameter unleaded fuel nozzle that has been moved relative to the fill tube to pivot the outer appearance door about a pivot axis through a first pivot angle to a first opened position to engage a tip of the small-diameter unleaded fuel nozzle so that further movement of the small-diameter unleaded fuel nozzle toward the inner flapper door is blocked, and
a cam face coupled to the stop gate and arranged to be moved by the outer appearance door against the spring to disable the stop gate, the cam face being located in the nozzle-receiving passageway to intercept the outer appearance door as the outer appearance door is being moved by a large-diameter diesel fuel nozzle having a relatively large diameter than the small-diameter unleaded fuel nozzle relative to the fill tube about the pivot axis through a larger second pivot angle to a second opened position to cause the outer appearance door to urge the cam face against the spring to compress the spring, thereby moving the stop gate in the nozzle-receiving passageway out of the path of the large diameter diesel fuel nozzle so that further movement of the large diameter diesel fuel nozzle to engage and move the inner flapper door from a normally closed position to an opened position admitting the large diameter diesel fuel nozzle into the inner nozzle-receiving opening.
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This application claims priority under 35 U.S.C. § 119(e) to U.S. Provisional Application Ser. No. 60/600,757, filed Aug. 11, 2004, which is expressly incorporated by reference herein.
The present disclosure relates to a fuel tank fill tube, and more particularly to a device for preventing the introduction of a nozzle for unleaded fuel into the fill tube of a fuel tank of a motor vehicle fitted with a diesel internal combustion engine.
Unleaded fuel should not be introduced into a fill tube of a motor vehicle powered by a diesel engine. It is customary to use a small-diameter fuel-dispensing nozzle (e.g., 22 mm or less) to dispense unleaded fuel into a fuel tank fill tube and to use a large-diameter fuel-dispensing nozzle (e.g., 26 mm or more) to dispense diesel and leaded fuel into a fill tube.
A nozzle inhibitor is configured to be coupled to a fuel tank fill tube and arranged to allow only a diesel fuel nozzle having an outer diameter that is greater than a specified minimum diameter to be inserted into the fill tube to a depth sufficient so that a user may dispense diesel fuel from that nozzle into a diesel fuel tank coupled to the fill tube. Such a nozzle inhibitor inhibits insertion of a small-diameter unleaded fuel nozzle into the fill tube of the diesel fuel tank, yet allows a large-diameter diesel fuel nozzle to be inserted into the fill tube of the diesel fuel tank.
In illustrative embodiments, the fill tube includes a filler neck coupled to a fuel tank and a filler neck closure assembly coupled to the filler neck. The nozzle inhibitor is mounted inside the filler neck closure assembly. For example, the nozzle inhibitor is interposed in a space provided in the filler neck closure assembly between a pivotable outer appearance door and a pivotable inner flapper door. The outer appearance door is pivoted through a first pivot angle to a first opened position in response to insertion of the small-diameter unleaded fuel nozzle into the filler neck closure assembly and pivoted through a larger second pivot angle to a second opened position in response to insertion of the large-diameter diesel fuel nozzle into the filler neck closure assembly.
Pivoting motion of the outer appearance door initiated by insertion of a large-diameter diesel fuel nozzle (but not a small-diameter unleaded fuel nozzle) in the fill tube is sufficient to disable the nozzle inhibitor to allow proper insertion of the large-diameter diesel fuel nozzle into the fill tube during tank refueling activities.
In illustrative embodiments, the nozzle inhibitor includes a stop gate positioned in the filler neck closure assembly and arranged to move in a direction generally perpendicular to a longitudinal axis of the filler neck closure assembly between an initial position blocking insertion of the small-diameter unleaded fuel nozzle into the filler neck closure assembly and a retracted position allowing insertion of the large-diameter diesel fuel nozzle into the filler neck closure assembly. The outer appearance door engages the stop gate to move the stop gate to the retracted position as the outer appearance door is pivoted to the second opened position in response to the insertion of the large-diameter diesel fuel nozzle (but not the small-diameter unleaded fuel nozzle) into the filler neck closure assembly.
Additional features of the disclosure will become apparent to those skilled in the art upon consideration of the following detailed description of illustrative embodiments exemplifying the best mode of carrying out the disclosure as presently perceived.
The detailed description particularly refers to the following figures in which:
A nozzle inhibitor 10 in accordance with a first embodiment of this disclosure is associated with a fill tube 23 coupled to a vehicle fuel tank 14 as suggested in
In an illustrative embodiment, nozzle inhibitor 10 comprises a cam member or face 101, a stop gate 102 coupled to cam member 101 for movement therewith, and a spring 103 arranged to yieldably bias cam member 101 and stop gate 102 to an initial or first position shown, for example, in
As used in the specification and claims, the terms “unleaded fuel nozzle,” “non-diesel fuel nozzle,” and “small-diameter nozzle” are used interchangeably, and the meaning of one term broadly covers the meaning of the other terms. The terms “diesel fuel nozzle,” “leaded fuel nozzle,” and “large-diameter nozzle” are also used interchangeably, and the meaning of one term broadly covers the meaning of the other terms. As used in the specification and claims, the terms “further insertion” and “full insertion” mean insertion of pump nozzles 16, 20, 22 past respective stop gates 102, 202 toward inner flapper door 66.
As shown in
Filler neck closure assembly 11 is assembled as shown, for example, in
As suggested in
In the illustrated embodiment, housing 36 comprises a base 38, an outer body 40 coupled to base 38, and an outer shell 42 coupled to outer body 40. Outer shell 42 includes a top wall 56, an annular skirt 68, and an L-shaped upper portion 70 interconnecting top wall 56 and annular skirt 68. Means 72 is appended to an underside of upper portion 70 for coupling outer shell 42 to outer body 40.
Assembly 11 includes a partition 44 mounted, for example, in a cavity formed in base 38 to lie in an interior region 48 formed in housing 36 between base 38 and outer body 40. Partition 44 is arranged as shown, for example, in
As suggested in
Housing 36 is adapted to be coupled to fuel tank filler neck 12 to receive pump nozzles 16, 20, 22 during refueling of fuel tank 14. Top wall 56 is formed to include an outer nozzle-receiving aperture 58 normally closed by an outer closure 60. As suggested in
Outer appearance door 59 is pivoted through a first pivot angle to a first opened position in response to insertion of small-diameter unleaded fuel nozzle 20 into filler neck closure assembly 11 as suggested in
Housing 36 includes a bottom wall 62 provided, for example, on base 38 and formed to include an inner nozzle-receiving aperture 64 normally closed by an inner flapper door 66. Flapper door 66 is arranged to be moved (e.g., pivoted) by large-diameter diesel fuel nozzle 22 (but not by small-diameter unleaded fuel nozzle 20) to assume an opened position during refueling operation as suggested in
Nozzles 16, 20, or 22 are movable through outer nozzle-receiving aperture 58 to move outer appearance door 59 to an opened position and then though pump nozzle-receiving passageway 48 formed in an interior region of housing 36 as suggested in
Outer body 40 includes an outer side wall 78 sized to fit in and mate with annular skirt 68 of outer shell 42, a lower rim 80 including an annular inner side wall 82 extending upwardly toward top wall 56 of outer shell 42, several small fasteners 84 extending downwardly from lower rim 80, and one large fastener 86 also extending downwardly from lower rim 80 as suggested in
Outer appearance door 59 in the illustrative embodiment is made of a plastics material and includes a round top wall 110, an annular upright wall 112 depending downwardly from a perimeter edge of top wall 110 and formed to include a plurality of circumferentially spaced-apart tether-receiving holes, and an annular lateral wall 116 extending radially outwardly from a lower perimeter edge of annular upright wall 112. Seal member 61 is over-molded onto appearance door 59 to produce outer closure 60.
In the illustrated embodiment, partition 44 includes a funnel 164 formed to include an outlet aperture 166 in alignment with inner nozzle-receiving aperture 64 formed in bottom wall 62 of housing 36. An upper surface of funnel 164 defines a lower boundary of outer vent chamber 52. A lower surface of funnel 164 defines an upper boundary of inner vent chamber 50. Partition 44 further includes a funnel support 172 coupled to an upper portion of funnel 164 and arranged to engage a portion of side and bottom walls of base 38 to support funnel 164 in interior region 48 of housing 36. As suggested in
As shown in
Filler neck closure assembly 11 is shown in
Insertion of small-diameter unleaded fuel nozzle 20 into filler neck 12 to pivot outer appearance door 59 about its pivot axis through a first pivot angle to a first opened position is shown, for example, in
In accordance with the second embodiment of this disclosure illustrated in
Nozzle inhibitor 210 includes means for supporting reciprocating movement of unit 204 comprising cam member 201 and stop gate 202 in a direction generally perpendicular to the direction of insertion of pump nozzles 16, 20, 22 into fill tube 23. In the illustrated embodiment, the supporting means includes a partition member 244 and bottom wall 62 of housing 36. Unit 204 is supported for reciprocating movement between the initial or first position suggested in
As large-diameter diesel fuel nozzle 22 is inserted into filler neck closure assembly 11 in the manner suggested in
In the illustrated embodiments of
McClung, Chad A., Frank, Kevin M., Harris, Wayne O.
Patent | Priority | Assignee | Title |
10000117, | Jan 22 2016 | STANT USA CORP | Filler neck closure assembly |
10226996, | Aug 04 2014 | STANT USA CORP | Filler neck closure assembly |
10640358, | Jun 21 2017 | Ford Global Technologies, LLC | Capless refill adapter for a fluid refilling system |
7640954, | Jun 28 2005 | Illinois Tool Works Inc | Head for a fuel filler pipe of a vehicle |
7665493, | Feb 10 2005 | STANT USA CORP | Fuel-dispensing nozzle inhibitor |
7708036, | Jun 28 2005 | ITW De France | Head for a fuel filler pipe of a vehicle |
7967041, | Jul 19 2007 | STANT USA CORP | Fuel-dispensing nozzle inhibitor |
7967042, | Feb 21 2008 | STANT USA CORP | Fuel-dispensing nozzle inhibitor |
7967361, | Nov 01 2006 | Ford Global Technologies, LLC | Method of making a filler neck housing assembly |
8186394, | Mar 31 2007 | G. Cartier Technologies | Device for avoiding errors in delivering fluid to a container |
8191588, | Nov 28 2008 | Toyoda Gosei Co., Ltd. | Fuel tank opening-closing device |
8763656, | Aug 25 2008 | NIFCO INC ; HONDA MOTOR CO , LTD | Device for preventing fueling error |
8800611, | Jun 09 2008 | Tecinnovation GmbH | Insert element for a container suitable for filling with urea at a filling station |
8863792, | Jun 10 2011 | Toyota Jidosha Kabushiki Kaisha | Filling port structure for fuel tank |
8910678, | Apr 16 2007 | Illinois Tool Works Inc. | Selective fuel nozzle inhibiting system |
8978913, | Feb 17 2011 | MAGNA STEYR Fuel Systems GesmbH | Filler neck for the fuel tank of a motor vehicle with selective opening |
8978914, | Feb 23 2011 | Toyota Jidosha Kabushiki Kaisha | Fuel tank fuel filler structure |
9067488, | May 28 2013 | Hyundai Motor Company | Filler neck apparatus for preventing fuel from mixing |
9234602, | Jul 28 2006 | TOYODA GOSEI CO , LTD | Tank opening-closing device |
9415679, | Mar 22 2013 | STANT USA CORP | Fuel-dispensing nozzle inhibitor |
9522593, | Dec 10 2013 | Hyundai Motor Company | Misfuelling prevention system for vehicle |
9701194, | May 10 2013 | STANT USA CORP | Fuel-dispensing nozzle inhibitor |
9908402, | Aug 04 2014 | STANT USA CORP | Filler neck closure assembly |
RE46009, | Jul 19 2007 | Stant USA Corp. | Fuel-dispensing nozzle inhibitor |
Patent | Priority | Assignee | Title |
3730216, | |||
4034784, | Aug 14 1974 | General Motors Corporation | Filler neck to inhibit use of leaded fuel |
4248279, | May 03 1979 | Chrysler Corporation | Tamper resistant fuel filler restrictor assembly |
4526216, | May 16 1983 | Yamaha Motor Corporation, U.S.A. | Unleaded fuel filling system for tanks without inlet pipe |
4687034, | May 28 1986 | Shell Oil Company | Controlled release insert for a diesel fuel supply nozzle and method of adding a petroleum substrate over said insert |
5212864, | Sep 04 1991 | MARTINREA INDUSTRIES INC | Nozzle restrictor assembly and method of installing same |
5322100, | Jan 27 1993 | INERGY AUTOMOTIVE SYSTEMS RESEARCH SOCIETE ANONYME | Fuel filler module |
5385179, | Sep 04 1991 | MARTINREA INDUSTRIES INC | Nozzle restrictor assembly |
5439129, | Jul 06 1994 | INERGY AUTOMOTIVE SYSTEMS RESEARCH SOCIETE ANONYME | Fuel tank filler pipe arrangement |
5465861, | Dec 16 1992 | Temtec Fahrzeugtechnik Entwicklungsgesellschaft mbH | Closure for closing the orifice of a socket-piece |
5715963, | Feb 09 1995 | DaimlerChrysler AG | Closing device for the fueling opening of a motor vehicle tank |
6302169, | Sep 13 2000 | EISENMANN, STEPHEN | Diesel fuel nozzle restrictor |
6382270, | Aug 03 2000 | Daimler AG | Device for preventing the introduction of a fuel nozzle |
6539990, | Nov 20 2001 | Illinois Tool Works Inc. | Capless refueling assembly |
6607014, | May 16 2001 | Fuel filling system | |
6968874, | Oct 07 2004 | Martinrea Industries, Inc. | Capless automotive fueling system |
6994130, | Oct 07 2004 | Martinrea Industries, Inc. | Capless automotive fueling system |
7077178, | Aug 11 2004 | STANT USA CORP | Fuel-dispensing nozzle inhibitor |
20020020465, | |||
20020170622, | |||
20040025967, | |||
20050000592, | |||
20060096662, | |||
20060237472, |
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Sep 16 2005 | MCCLUNG, CHAD A | STANT MANUFACTURING INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 016736 | /0129 | |
Sep 16 2005 | HARRIS, WAYNE O | STANT MANUFACTURING INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 016736 | /0129 | |
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